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How can I make many empty arrays without manually typing

list1=[] , list2=[], list3=[]

Is there a for loop that will make me 'n' number of such empty arrays?

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4 Answers

A list comprehension is easiest here:

>>> n = 5
>>> lists = [[] for _ in range(n)]
>>> lists
[[], [], [], [], []]

Be wary not to fall into the trap that is:

>>> lists = [[]] * 5
>>> lists
[[], [], [], [], []]
>>> lists[0].append(1)
>>> lists
[[1], [1], [1], [1], [1]]
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1  
Holy wow! we posted this at EXACTLY The same time (mind=blown) –  inspectorG4dget Nov 22 '12 at 22:37
3  
@inspectorG4dget: There should be a badge for that –  Eric Nov 22 '12 at 22:38
    
This creates a list of lists though, not separate variables with different names. Although it is definitely shorter. –  alemangui Nov 22 '12 at 22:47
    
@alemangui: Creating n separate variables with different names is a strong indication that you want a list of lists –  Eric Nov 22 '12 at 23:06
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Lookup list comprehensions

listOfLists = [[] for i in range(N)]

Now, listOfLists has N empty lists in it

More links on list comprehensions:

1 2 3

Hope this helps

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If you want to create different lists without a "list of lists", try this:

list1, list2, list3, list4 = ([] for i in range(4))
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list1, list2, list3, list4 = [], [], [], [] is still shorter! TIL you can unpack a generator all at once –  Eric Nov 22 '12 at 22:42
1  
for 4 yes, but it is handy if there are more –  alemangui Nov 22 '12 at 22:43
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How about this.

def mklist(n):
    for _ in range(n):
        yield []

Usage:

list(mklist(10))
[[], [], [], [], [], [], [], [], [], []]

a, b, c = mklist(3) # a=[]; b=[]; c=[]
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